Question

How do you find the max or minimum of `f(x)=3-x^2-6x`?

Answer 1

At `(-3, 12)`the function has a maximum.

Explanation:

Given -

`y=3-x^2-6x`

Take the first derivative

`dy/dx=-2x-6`

Find for what value of `x; dy/dx` becomes zero

`dy/dx=0 => -2x-6=0`

`-2x-6=0`
`-2x=6`
`x=6/(-2)=-3`

Its interpretation is when `x` takes the value `0`; the slope of the curve is zero. The curve turns.

To find the point of turn, substitute `x=-3` in the given function

At `x=-3`

`y=3-(-3)^2-6(-3)`
`y=3-9+18=12`

At `(-3, 12)`the curve's slope is zero. The curve truns.

It may be minimum point or maximum point.

To find this calculate the second derivative

`(d^2y)/(dx^2)=-2 <0`

The second derivative is less than zero. Hence the curve has a maximum.

At `(-3, 12)`the function has a maximum.

graph{3-x^2-6x [-32.48, 32.48, -16.24, 16.24]}